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Aqueous ethylenediamine for CO(2) capture.
Shan Zhou1, Xi Chen, Thu Nguyen
1Department of Thermal Engineering, Tsinghua University, Beijing, PR China.
Chemsuschem
|August 3, 2010
Summary
Aqueous ethylenediamine (EDA) shows promise for CO2 capture, offering high capacity and stability up to 120°C. While slower at rich loading, EDA presents a viable alternative to monoethanolamine (MEA) for flue gas treatment.
Area of Science:
- Chemical Engineering
- Environmental Science
- Materials Science
Background:
- Carbon dioxide (CO2) capture is crucial for mitigating climate change.
- Aqueous amine solutions are widely studied for CO2 absorption.
- Ethylenediamine (EDA) is explored as a potential solvent for CO2 capture.
Purpose of the Study:
- To evaluate aqueous ethylenediamine (EDA) as a solvent for CO2 capture from flue gas.
- To assess EDA's performance characteristics including capacity, absorption rate, viscosity, and thermal stability.
- To compare EDA's performance with established solvents like monoethanolamine (MEA).
Main Methods:
- Investigated 12 M aqueous EDA for CO2 capture.
- Measured viscosity, CO2 loading capacity, and absorption rates.
- Assessed thermal degradation at temperatures up to 120°C.
- Evaluated the effect of an inhibitor on oxidative degradation.
- Determined the apparent heat of CO2 desorption.
Main Results:
- 12 M EDA exhibits acceptable viscosity (16 cP) and CO2 loading (0.48 mol CO2/equiv EDA).
- EDA is stable up to 120°C, with degradation occurring above this temperature.
- Oxidative degradation does not cause excessive foaming, unlike piperazine.
- CO2 absorption rate is comparable to 7 M MEA over much of the loading range, but slower at rich loading.
- EDA has a CO2 capacity of 0.72 mol CO2/(kg H2O+EDA), double that of MEA.
- Apparent heat of CO2 desorption is 84 kJ/mol CO2.
Conclusions:
- Aqueous EDA is a promising solvent for CO2 capture, offering high capacity and good thermal stability.
- EDA's performance, particularly its capacity, makes it a competitive alternative to MEA.
- Further research into optimizing EDA for faster rich loading absorption rates is warranted.
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